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Figure 5. BEAST chronogram from a data set corresponding with Table 1 in Verifying Australian Nilotanypus Kieffer (Chironomidae) In A Global Perspective: Molecular Phylogenetic And Temporal Analyses, New Species And Emended Generic Diagnoses
Figure 5. BEAST chronogram from a data set corresponding with Table 1. Values at nodes are time to most recent common ancestor (tmrca) with HPD (95% Highest Posterior Density) intervals in parentheses. The time scale is in millions of years before present.
Figure 3 in Verifying Australian Nilotanypus Kieffer (Chironomidae) In A Global Perspective: Molecular Phylogenetic And Temporal Analyses, New Species And Emended Generic Diagnoses
Figure 3. Nilotanypus ctenochelus sp. n. A. Wing sheath, tubercle row; B. Larval posterior parapod, comb claw.
Figure 5 in A new species of Maldivea Gerlach, 1962 (Nematoda, Oxystominidae) from Felidhoo atoll (Maldives, Indian Ocean) and an emended diagnosis of the sub-family and genus
Figure 5. World distribution of the species belonging to the subfamily Paroxystomininae De Coninck, 1965.
Figure 4 in A new species of Maldivea Gerlach, 1962 (Nematoda, Oxystominidae) from Felidhoo atoll (Maldives, Indian Ocean) and an emended diagnosis of the sub-family and genus
Figure 4. Light micrographs of the male of Maldivea complexa n. sp. A,B) Detail of the buccal cavity, C) Detail of amphideal fovea, D) Copulatory apparatus, E) Precloacal sub-ventral pairs of short and stout setae close to the cloacal opening, F) Detail of the precloacal sub-ventral pairs of short and stout setae in the elevation of the cuticle, G) Details of the post-cloacal setae and tail tip. Scale bars: A-B: 5 µm, C,E: 10 µm; D, F,G: 20 µm.
Figure 3 in A new species of Maldivea Gerlach, 1962 (Nematoda, Oxystominidae) from Felidhoo atoll (Maldives, Indian Ocean) and an emended diagnosis of the sub-family and genus
Figure 3. Drawings of the male of Maldivea complexa n. sp. A) Detail of the anterior end of the male. B) Detail of the amphideal fovea of the male. C) Detail of the copulatory apparatus and caudal region. Scale bar: A: 10 µm, B: 50 µm.
Plate 6 in Taxonomic Revision and Classification of Extant Holococcolithophores Previously Placed in the Genus Anthosphaera Kamptner emend. Kleijne 1991
Plate 6. Syracosphaera elevata Archontikis, Young, Cros sp. nov. HOL Scale bars = 1μm 1. Holotype; flattened coccosphere with high-arched CFCs and tiny and partially calcified BCs. 2. Paratype; coccosphere with CFCs that bear distal processes made of delicate microcrystals (arrow a), and BCs with a loose assembly of irregularly arranged microcrystals at their distal cover (arrow b). 3. Paratype; BCs' central structure may lose its crystal assembly (arrow). 4. Paratype.
Plate 5 in Taxonomic Revision and Classification of Extant Holococcolithophores Previously Placed in the Genus Anthosphaera Kamptner emend. Kleijne 1991
Plate 5. Syracosphaera rotaconica Archontikis, Young, Cros sp. nov. HOL Scale bars = 1μm 1. Holotype; flattened coccosphere with chiral-conical BCs that usually show a small apical boss on top of the central distal cover. BCs' central structure is made of numerous crystal struts, progressively meeting and forming the distal cover. 2. Detail of figure 1 showing the ultrastructure of BCs. 3. Paratype; coccosphere showing the delicate structure of CFCs (see arrow). 4. Paratype.
Plate 2 in Taxonomic Revision and Classification of Extant Holococcolithophores Previously Placed in the Genus Anthosphaera Kamptner emend. Kleijne 1991
Plate 2. Syracosphaera marginiporata Knappertsbusch HOL Scale bars = 1μm 1. Complete coccosphere with CFCs that show distal processes with straight sides (arrow a) and lateral columns of crystallites (arrow b). 2. Collapsed coccosphere with BCS that leave multiple openings at the central structure (arrow a) and a broken CFC in which the column is attached to the rim (arrow b). 3. Flattened coccosphere with CFCs that bear high processes with rounded to somewhat straight sides (arrow a), sustained by columns of large crystallites (arrow b). 4. Detailed view of specimen showing a broken CFCs with the two columns of crystals (see arrow) attached to the rim and next to the broken distal process (see arrow).
Fig. 2 in Taxonomic Revision and Classification of Extant Holococcolithophores Previously Placed in the Genus Anthosphaera Kamptner emend. Kleijne 1991
Fig. 2. Schematic representation and terminology of Anthosphaera coccosphere and holococcolith types.
Plate 4 in Taxonomic Revision and Classification of Extant Holococcolithophores Previously Placed in the Genus Anthosphaera Kamptner emend. Kleijne 1991
Plate 4. Syracosphaera periperforata (Kleijne) Archontikis, Young, Cros comb. nov. HOL Scale bars = 1μm 1–2. Syracosphaera periperforata var. periperforata (Kleijne) Archontikis, Young, Cros HOL. 1. Coccosphere with highly arched CFCs (arrow a) and dome-shaped BCs that show an apical boss on top of their central distal cover (arrow b). 2. Detailed view showing the delicate structure of the CFCs' distal process. 3–4. Syracosphaera periperforata var. cylindrata Archontikis, Young, Cros var. nov. HOL. 3. Holotype; Complete coccosphere with high-arched CFCs (arrow a) and BCs of cylindrical shape that show no apical boss on top of their central structure; antapical coccoliths (arrow b) always bear an apical boss. 4. Paratype; detailed view showing the proximal (organic) base-plate and the rim of CFCs (arrow). 5–6. Syracosphaera periperforata var. tridentata Archontikis, Young, Cros var. nov. HOL. 5. Holotype; flattened coccosphere with CFCs that bear a low process with a three pointed upper/distal margin structure (arrow a), and a proximal rim with one to two rings of microcrystallites (arrow b); BCs present an apical boss on top of their distal cover. 6. Paratype.
Plate 1 in Taxonomic Revision and Classification of Extant Holococcolithophores Previously Placed in the Genus Anthosphaera Kamptner emend. Kleijne 1991
Plate 1. Syracosphaera molischii Schiller HOL Scale bars = 1μm 1–3. Syracosphaera molischii Schiller var. molischii HOL 1. Complete coccosphere. 2. Detailed view showing the ultrastructure (arrow) of CFCs. 3. Detailed view of BCs showing the angular microcrystallites of the central structure and the tiny perforations at the perforate cycle (arrow). 4–6. Syracosphaera molischii var. pertusa Archontikis, Young, Cros var. nov. HOL 4. Holotype; flattened coccosphere. 5. Paratype; coccosphere with BCs that bear larger (to that of S. molischii var. molischii HOL) perforations on their perforate cycle (arrow). 6. Detailed view of BCs with longitudinally arranged crystals at the central structure.
Plate 3 in Taxonomic Revision and Classification of Extant Holococcolithophores Previously Placed in the Genus Anthosphaera Kamptner emend. Kleijne 1991
Plate 3. Scale bars = 1μm 1–2. Syracosphaera lafourcadii (Lecal) Archontikis, Young, Cros comb. nov. HOL Complete coccospheres composed of CFCs that bear low distal processes (see arrows) and BCs with distal covers made of irregularly arranged crystallites. 3–4. Syracosphaera origami (Cros and McGrane) Archontikis, Young, Cros comb. nov. HOL Coccospheres with highly ornamented CFCs showing triangle-shaped distal processes (fig. 3, arrow) and BCs with an organic base-plate in proximal view (fig. 4, arrow a) and a rim that supports delicate struts of crystallites holding the origami-like paper boat distal covers (fig. 4, arrow b) in distal view.
Taxonomic studies on Malagasy Dalbergia (Fabaceae). III. Two new species from Southeastern Madagascar and an emended description of the rosewood species D. maritima
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Fig. 1 in Taxonomic studies on Malagasy Dalbergia (Fabaceae). I. Two new species from northern Madagascar, and an emended description for D. manongarivensis
Fig. 1. – Map showing the approximate distribution ranges
Fig. 6. – Dalbergia obcordata N in Taxonomic studies on Malagasy Dalbergia (Fabaceae). I. Two new species from northern Madagascar, and an emended description for D. manongarivensis
Fig. 6. – Dalbergia obcordata N. Wilding, Phillipson & Crameri. Inflorescence and leaflets.
Figure 4 in A New Species Of Petalocladius Sublette & Wirth, 1972 (Diptera, Chironomidae, Orthocladiinae) From The Dominican Republic, With An Emended Generic Diagnosis
Figure 4. The type locality of Petalocladius dominiensis Andersen & Baranov sp. n.
Figure 2 in A New Species Of Petalocladius Sublette & Wirth, 1972 (Diptera, Chironomidae, Orthocladiinae) From The Dominican Republic, With An Emended Generic Diagnosis
Figure 2. Petalocladius dominiensis Andersen & Baranov sp. n., male. Wing.
TABLE 4 in A New Species of the Rodent Genus Oecomys (Cricetidae: Sigmodontinae: Oryzomyini) from Eastern Bolivia, with Emended Definitions of O. concolor (Wagner) and O. mamorae (Thomas)
<p>TABLE 4 <b>External and Craniodental Measurements for the Type Series of <i>O. sydandersoni</i>, New Species, and Samples of <i>O. concolor</i> and <i>O. mamorae</i></b> (Sample statistics include the mean, ± 1 standard deviation, and the observed range).</p><table><thead><tr><th></th><th><i>O. sydandersoni</i> Holotype</th><th><i>O. sydandersoni</i> El Refugio</th><th><i>O. concolor</i> Amazonas, Brazil</th><th><i>O. mamorae</i> Beni, Bolivia</th></tr></thead><tbody><tr><th>Variable</th><td>(MNK 2679)</td><td>(<i>N</i> <b>=</b> 21–23)</td><td>(<i>N</i> <b>=</b> 23, 24)</td><td>(<i>N</i> <b>=</b> 14–16)</td></tr><tr><th>TOTL</th><td>242</td><td>257.9 ± 16.7 233–290</td><td>273.2 ± 11.2 255–296</td><td>296.0 ± 18.3 270–230</td></tr><tr><th>HBL</th><td>118</td><td>125.0 ± 12.2 109–166</td><td>125.4 ± 5.8 115–141</td><td>139.8 ± 13.1 120–170</td></tr><tr><th>TL</th><td>124</td><td>132.8 ± 8.4 115–145</td><td>147.9 ± 6.9 137–160</td><td>158.5 ± 10.7 144–180</td></tr><tr><th>HFL</th><td>23</td><td>24.1 ± 1.7 21–27</td><td>27.4 ± 1.1 26–29</td><td>27.3 ± 1.8 23–30</td></tr><tr><th>EL</th><td>17</td><td>16.4 ± 1.1 15–19</td><td>17.1 ± 1.3 15–20</td><td>18.0 ± 1.2 17–20</td></tr><tr><th>WT</th><td>45</td><td>44.9 ± 7.8 30–57</td><td>57.8 ± 9.5 41–80</td><td>73.9 ± 29.9 48–120</td></tr><tr><th>ONL</th><td>30.7</td><td>29.8 ± 1.2 27.7–32.0</td><td>32.2 ± 0.9 30.2–34.3</td><td>32.5 ± 1.2 30.9–34.5</td></tr><tr><th>ZB</th><td>16.7</td><td>16.5 ± 0.6 15.3–17.6</td><td>17.7 ± 0.6 16.6–19.1</td><td>17.1 ± 0.7 15.6–18.1</td></tr><tr><th>BBC</th><td>11.8</td><td>11.8 ± 0.3 11.3–12.4</td><td>12.5 ± 0.4 11.8–13.3</td><td>12.6 ± 0.3 12.0–13.2</td></tr><tr><th>DBC</th><td>9.5</td><td>9.1 ± 0.3 8.5–9.7</td><td>9.4 ± 0.3 8.8–9.9</td><td>9.3 ± 0.5 7.7–10.0</td></tr><tr><th>BOC</th><td>6.6</td><td>6.5 ± 0.1 6.3–6.8</td><td>6.8 ± 0.2 6.4–7.3</td><td>7.3 ± 0.4 6.6–7.8</td></tr><tr><th>IOB</th><td>5.4</td><td>5.3 ± 0.3 4.8–5.7</td><td>5.5 ± 0.2 5.1–6.0</td><td>4.9 ± 0.2 4.6–5.2</td></tr><tr><th>LR</th><td>8.2</td><td>8.4 ± 0.5 7.5–9.1</td><td>9.1 ± 0.4 8.4–9.9</td><td>9.1 ± 0.4 8.6–10.0</td></tr><tr><th>BR</th><td>5.4</td><td>5.5 ± 0.3 4.7–6.2</td><td>6.1 ± 0.3 5.5–6.7</td><td>5.8 ± 0.3 5.4–6.2</td></tr><tr><th>PPL</th><td>10.4</td><td>10.3 ± 0.5 9.2–11.4</td><td>10.6 ± 0.4 9.9–11.4</td><td>11.3 ± 0.5 10.4–12.0</td></tr><tr><th>BPL</th><td>5.7</td><td>5.6 ± 0.3 4.9–6.0</td><td>6.6 ± 0.3 5.9–7.3</td><td>6.1 ± 0.4 5.4–6.9</td></tr><tr><th>LIF</th><td>5.6</td><td>5.4 ± 0.3 4.9–5.8</td><td>5.3 ± 0.3 4.5–6.2</td><td>5.8 ± 0.3 5.3–6.3</td></tr><tr><th>BIF</th><td>2.6</td><td>2.6 ± 0.2 2.2–2.8</td><td>2.3 ± 0.2 1.8–2.7</td><td>2.5 ± 0.3 2.0–2.9</td></tr><tr><th>LD</th><td>7.4</td><td>7.7 ± 0.5 6.8–8.7</td><td>8.1 ± 0.4 7.6–9.1</td><td>8.0 ± 0.5 7.2–8.7</td></tr><tr><th>BBP</th><td>5.7</td><td>5.7 ± 0.2 5.2–6.2</td><td>6.1 ± 0.2 5.7–6.4</td><td>5.9 ± 0.3 5.4–6.4</td></tr><tr><th>Variable</th><td>(MNK 2679)</td><td>(<i>N</i> <b>=</b> 21–23)</td><td>(<i>N</i> <b>=</b> 23, 24)</td><td>(<i>N</i> <b>=</b> 14–16)</td></tr><tr><th>BZP</th><td>3.2</td><td>2.9 ± 0.2 2.5–3.2</td><td>3.3 ± 0.2 2.9–3.6</td><td>3.4 ± 0.3 2.8–3.9</td></tr><tr><th>CLM</th><td>4.80</td><td>4.57 ± 0.14 4.35–4.90</td><td>4.93 ± 0.13 4.70–5.10</td><td>5.04 ± 0.21 4.70–5.40</td></tr><tr><th>WM1</th><td>1.40</td><td>1.32 ± 0.05 1.25–1.40</td><td>1.40 ± 0.06 1.30–1.50</td><td>1.39 ± 0.09 1.30–1.50</td></tr></tbody></table>
TABLE 6 in A New Species of the Rodent Genus Oecomys (Cricetidae: Sigmodontinae: Oryzomyini) from Eastern Bolivia, with Emended Definitions of O. concolor (Wagner) and O. mamorae (Thomas)
<p>TABLE 6 <b>External and Craniodental Measurements of the Four Species of <i>Oecomys</i> Collected in the Parc Nacional Noel Kempff Mercado, Eastern Bolivia</b> (Sample statistics include the mean, ± 1 standard deviation, and the observed range.)</p><table><thead><tr><th>Variable</th><th><i>O. bicolor</i> a (<i>N</i> <b>=</b> 7, 8)</th><th><i>O. sydandersoni</i> (<i>N</i> <b>=</b> 21–23)</th><th><i>O. roberti</i> b (<i>N</i> <b>=</b> 4, 6)</th><th><i>O. trinitatis</i> c (<i>N</i> <b>=</b> 3, 4)</th></tr></thead><tbody><tr><th>TOTL</th><td>211.8 ± 23.4 172–240</td><td>257.9 ± 16.7 233–290</td><td>273.5 ± 22.3 237–295</td><td>260.7 ± 17.6 241–275</td></tr><tr><th>TL</th><td>103.9 ± 10.8 87–122</td><td>132.8 ± 8.4 115–145</td><td>142.2 ± 13.1 127–160</td><td>135.3 ± 3.8 131–138</td></tr><tr><th>HFL</th><td>19.4 ± 1.0 18–21</td><td>24.1 ± 1.7 21–27</td><td>25.7 ± 1.7 24–28</td><td>26.0 ± 1.1 25–27</td></tr><tr><th>EL</th><td>14.5 ± 0.5 14–15</td><td>16.4 ± 1.1 15–19</td><td>15.8 ± 1.0 14–17</td><td>17.3 ± 1.7 15–19</td></tr><tr><th>WT</th><td>29.9 ± 8.1 20–43</td><td>44.9 ± 7.8 30–57</td><td>50.5 ± 18.1 34–86</td><td>45.8 ± 8.7 33–52</td></tr><tr><th>ONL</th><td>26.8 ± 1.3 24.6–27.8</td><td>29.8 ± 1.2 27.7–32.0</td><td>31.9 ± 1.5 29.6–33.7</td><td>30.7 ± 1.6 28.5–32.0</td></tr><tr><th>ZB</th><td>14.1 ± 0.8 12.9–15.1</td><td>16.5 ± 0.6 15.3–17.6</td><td>16.7 ± 0.9 15.1–17.6</td><td>16.1 ± 0.9 15.1–17.3</td></tr><tr><th>BBC</th><td>11.1 ± 0.4 10.5–11.7</td><td>11.8 ± 0.3 11.3–12.4</td><td>12.1 ± 0.2 11.9–12.4</td><td>11.8 ± 0.4 11.4–12.3</td></tr><tr><th>DBC</th><td>8.4 ± 0.2 8.1–8.7</td><td>9.1 ± 0.3 8.5–9.7</td><td>9.1 ± 0.5 8.3–9.6</td><td>9.0 ± 0.2 8.9–9.3</td></tr><tr><th>BOC</th><td>5.9 ± 0.2 5.7–6.3</td><td>6.5 ± 0.1 6.3–6.8</td><td>6.6 ± 0.1 6.4–6.7</td><td>6.5 ± 0.1 6.4–6.6</td></tr><tr><th>IOB</th><td>4.7 ± 0.2 4.3–4.9</td><td>5.3 ± 0.3 4.8–5.7</td><td>5.5 ± 0.2 5.2–5.7</td><td>5.1 ± 0.3 4.9–5.6</td></tr><tr><th>LR</th><td>7.7 ± 0.6 6.6–8.3</td><td>8.4 ± 0.5 7.5–9.1</td><td>9.7 ± 0.4 9.2–10.3</td><td>9.5 ± 0.6 8.6–9.9</td></tr><tr><th>BR</th><td>4.9 ± 0.3 4.4–5.2</td><td>5.5 ± 0.3 4.7–6.2</td><td>5.9 ± 0.2 5.7–6.1</td><td>5.9 ± 0.5 5.2–6.4</td></tr><tr><th>PPL</th><td>9.4 ± 0.7 8.1–9.9</td><td>10.3 ± 0.5 9.2–11.4</td><td>11.1 ± 1.0 9.6–12.7</td><td>10.4 ± 0.6 9.7–11.0</td></tr><tr><th>BPL</th><td>4.4 ± 0.4 3.8–4.9</td><td>5.6 ± 0.3 4.9–6.0</td><td>6.3 ± 0.2 6.1–6.7</td><td>6.3 ± 0.5 5.7–6.8</td></tr><tr><th>LIF</th><td>4.5 ± 0.3 3.8–4.9</td><td>5.4 ± 0.3 4.9–5.8</td><td>5.2 ± 0.4 4.5–5.7</td><td>5.1 ± 0.3 4.7–5.4</td></tr><tr><th>BIF</th><td>2.1 ± 0.1 1.9–2.2</td><td>2.6 ± 0.2 2.2–2.8</td><td>2.5 ± 0.2 2.3–2.8</td><td>2.3 ± 0.1 2.2–2.4</td></tr><tr><th>LD</th><td>6.7 ± 0.6 5.7–7.3</td><td>7.7 ± 0.5 6.8–8.7</td><td>8.3 ± 0.4 7.7–8.9</td><td>7.6 ± 0.6 6.9–8.2</td></tr><tr><th>BBP</th><td>4.9 ± 0.3 4.5–5.2</td><td>5.7 ± 0.2 5.2–6.2</td><td>5.8 ± 0.2 5.6–6.1</td><td>5.9 ± 0.3 5.5–6.1</td></tr><tr><th>BZP</th><td>2.2 ± 0.3 1.8–2.7</td><td>2.9 ± 0.2 2.5–3.2</td><td>2.8 ± 0.4 2.1–3.3</td><td>3.3 ± 0.3 3.0–3.7</td></tr><tr><th>CLM</th><td>3.75 ± 0.14 3.57–3.93</td><td>4.57 ± 0.14 4.35–4.90</td><td>4.76 ± 0.23 4.48–5.15</td><td>4.80 ± 0.18 4.64–5.05</td></tr><tr><th></th><td><i>O. bicolor</i> a</td><td><i>O. sydandersoni</i></td><td><i>O. roberti</i> b</td><td><i>O. trinitatis</i> c</td></tr><tr><th>Variable</th><td>(<i>N</i> <b>=</b> 7, 8)</td><td>(<i>N</i> <b>=</b> 21–23)</td><td>(<i>N</i> <b>=</b> 4, 6)</td><td>(<i>N</i> <b>=</b> 3, 4)</td></tr><tr><th>WM1</th><td>1.09 ± 0.04</td><td>1.32 ± 0.05</td><td>1.36 ± 0.06</td><td>1.41 ± 0.08</td></tr><tr><th></th><td>1.05–1.17</td><td>1.25–1.40</td><td>1.28–1.46</td><td>1.35–1.53</td></tr></tbody></table><p><sup>a</sup> Bolivia, Santa Cruz, Parque Nacional Noel Kempff Mercado, 2.5 km NE El Refugio (MNK-LHE 1561; MNK-VCC 13, 20, 132; USNM 584546–584549).</p><p><sup>b</sup> Bolivia, Santa Cruz, Parque Nacional Noel Kempff Mercado, 2.5 km NE El Refugio (MNK-LHE 1658, 1669, 1681, 1685; MNK-VCC 9; USNM 584550, 584551).</p><p><sup>c</sup> Bolivia, Santa Cruz, Parque Nacional Noel Kempff Mercado, Los Fierros (MNK-LHE 1565, 1682; USNM 584552, 584553).</p>
TABLE 2 in A New Species of the Rodent Genus Oecomys (Cricetidae: Sigmodontinae: Oryzomyini) from Eastern Bolivia, with Emended Definitions of O. concolor (Wagner) and O. mamorae (Thomas)
<p>TABLE 2 <b>Results of Principal Components Analyses Comparing Adult <i>Oecomys</i> sp. novum with <i>O. concolor</i> and <i>O. mamorae</i></b> (Based on 17 log-transformed craniodental variables; see Materials and Methods and fig. 2.)</p><table><thead><tr><th></th><th colspan="2"><i>O. sp. novum</i> + <i>O. concolor</i></th><th colspan="2"><i>O. sp. novum</i> + <i>O. mamorae</i></th></tr></thead><tbody><tr><th></th><td colspan="2">Correlations</td><td colspan="2">Correlations</td></tr><tr><th>Variable</th><td>PC I</td><td>PC II</td><td>PC I</td><td>PC II</td></tr><tr><th>ONL</th><td>0.96***</td><td>0.10</td><td>0.97***</td><td><b>-</b> 0.07</td></tr><tr><th>ZB</th><td>0.86***</td><td>0.13</td><td>0.83***</td><td>0.29</td></tr><tr><th>BBC</th><td>0.80***</td><td>0.02</td><td>0.74***</td><td><b>-</b> 0.15</td></tr><tr><th>DBC</th><td>0.53***</td><td>0.15</td><td>0.32</td><td>0.26</td></tr><tr><th>BOC</th><td>0.63***</td><td><b>-</b> 0.24</td><td>0.75***</td><td><b>-</b> 0.28</td></tr><tr><th>IOB</th><td>0.54***</td><td>0.13</td><td><b>-</b> 0.17</td><td>0.76***</td></tr><tr><th>LR</th><td>0.82***</td><td>0.26</td><td>0.84***</td><td><b>-</b> 0.05</td></tr><tr><th>BR</th><td>0.84***</td><td><b>-</b> 0.04</td><td>0.74***</td><td>0.06</td></tr><tr><th>BZP</th><td>0.76***</td><td>0.11</td><td>0.88***</td><td><b>-</b> 0.03</td></tr><tr><th>PPL</th><td>0.73***</td><td>0.41**</td><td>0.91***</td><td><b>-</b> 0.06</td></tr><tr><th>BPL</th><td>0.87***</td><td><b>-</b> 0.29*</td><td>0.71***</td><td><b>-</b> 0.14</td></tr><tr><th>LD</th><td>0.84***</td><td>0.35**</td><td>0.85***</td><td>0.41**</td></tr><tr><th>LIF</th><td>0.35**</td><td>0.72***</td><td>0.81***</td><td><b>-</b> 0.09</td></tr><tr><th>BIF</th><td><b>-</b> 0.18</td><td>0.91***</td><td>0.36</td><td>0.82***</td></tr><tr><th>BBP</th><td>0.82***</td><td>0.11</td><td>0.78***</td><td>0.07</td></tr><tr><th>CLM</th><td>0.72***</td><td><b>-</b> 0.40**</td><td>0.59***</td><td><b>-</b> 0.69***</td></tr><tr><th>WM1</th><td>0.64***</td><td><b>-</b> 0.37**</td><td>0.38</td><td><b>-</b> 0.58***</td></tr><tr><th>Eigenvalue</th><td>0.033</td><td>0.011</td><td>0.045</td><td>0.012</td></tr><tr><th>% Variance</th><td>53.5</td><td>17.5</td><td>55.8</td><td>14.9</td></tr></tbody></table><p>* <b>=</b> P <b>#</b> 0.05; ** <b>=</b> P <b>#</b> 0.01; *** <b>=</b> P <b>#</b> 0.001.</p>
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